Cu-oxo nanoclusters in Cu-exchanged zeolites oxidize methane to methanol via a three-step process. Cu-exchanged ferrierite shows high reactivity to this selective oxidation at both ambient and elevated methane pressures. The active sites are dimeric Cu clusters located in the eight-membered channels of ferrierite, containing two oxygen atoms with different reactivities. Combining in situ ultraviolet–visible (UV–vis), X-ray absorption spectroscopy (XAS), and Raman spectroscopy, it is shown that the active site is a [Cu2O2]2+ cluster stabilized at pairs of negatively charged aluminum oxygen tetrahedra. This cluster is able to oxidize up to two methane molecules at elevated methane chemical potential
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
. (2015). Singlesite trinuclear copper oxygen clusters in mordenite for selective conversion of meth...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
The partial oxidation of methane to methanol with molecular Oat mild reaction conditions is a challe...
Cu-exchanged zeolites are known to be active in the selective oxidation of methane to methanol at mo...
Cu-exchanged zeolites are known to be active in the selective oxidation of methane to methanol at mo...
Copper-oxo clusters exchanged in zeolite mordenite are active in the stoichiometric conversion of me...
A periodic density functional theory study complemented by ab initio thermodynamic analysis was carr...
Copper-exchanged zeolites with mordenite structure mimic the nuclearity and reactivity of active sit...
Cu-exchanged aluminosilicate zeolites have been intensively studied for the selective oxidation of m...
A series of Cu-ZSM-5 zeolites was prepared by varying nature of the charge compensating cation, copp...
A series of Cu-ZSM-5 zeolites was prepared by varying nature of the charge compensating cation, copp...
Direct and selective conversion of methane to methanol is a challenging reaction due to the inherent...
The selective partial oxidation of methane to methanol remains a great challenge in the field of cat...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
. (2015). Singlesite trinuclear copper oxygen clusters in mordenite for selective conversion of meth...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
The partial oxidation of methane to methanol with molecular Oat mild reaction conditions is a challe...
Cu-exchanged zeolites are known to be active in the selective oxidation of methane to methanol at mo...
Cu-exchanged zeolites are known to be active in the selective oxidation of methane to methanol at mo...
Copper-oxo clusters exchanged in zeolite mordenite are active in the stoichiometric conversion of me...
A periodic density functional theory study complemented by ab initio thermodynamic analysis was carr...
Copper-exchanged zeolites with mordenite structure mimic the nuclearity and reactivity of active sit...
Cu-exchanged aluminosilicate zeolites have been intensively studied for the selective oxidation of m...
A series of Cu-ZSM-5 zeolites was prepared by varying nature of the charge compensating cation, copp...
A series of Cu-ZSM-5 zeolites was prepared by varying nature of the charge compensating cation, copp...
Direct and selective conversion of methane to methanol is a challenging reaction due to the inherent...
The selective partial oxidation of methane to methanol remains a great challenge in the field of cat...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...
. (2015). Singlesite trinuclear copper oxygen clusters in mordenite for selective conversion of meth...
Identifying Cu-exchanged zeolites able to activate C-H bonds and selectively convert methane to meth...